Modelling forest volume with small area estimation of forest inventory using GEDI footprints as auxiliary information
2022
Zhang, Shaohui | Vega, Cédric | Deleuze, Christine | Durrieu, Sylvie | Barbillon, Pierre, M | Bouriaud, Olivier | Renaud, Jean-Pierre | University of Eastern Finland = Itä-Suomen Yliopisto = Östra Finlands universitet (UEF) | Recherche, développement et innovation (ONF-RDI) ; Office National des Forêts (ONF) | Laboratoire d'Inventaire Forestier (LIF) ; Institut National de l'Information Géographique et Forestière [IGN] (IGN)-Université de Lorraine (UL) | Recherche, développement et innovation (ONF-RDI) ; Office National des Forêts (ONF) | Territoires, Environnement, Télédétection et Information Spatiale (UMR TETIS) ; Centre de Coopération Internationale en Recherche Agronomique pour le Développement (Cirad)-AgroParisTech-Centre National de la Recherche Scientifique (CNRS)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE) | Mathématiques et Informatique Appliquées (MIA Paris-Saclay) ; AgroParisTech-Université Paris-Saclay-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE) | Institut National de l'Information Géographique et Forestière [IGN] (IGN) | University Stefan cel Mare of Suceava (USU) | This research received the financial support of the TOSCA Continental Surface program of the Centre National d'Etudes Spatiales (CNES) through the project SLIM "Space Lidar for Improved Multisource Forest Inventory" ( grant number 4800001129 ). SZ also received financial support from the Academy of Finland Flagship Programme (Forest-Human-Machine Interplay - Building Resilience, Redefining Value Networks and Enabling Meaningful Experiences (UNITE); grant number 337127). OB acknowledged funding from project Pro-USV-Biom, contract no. 10PFE/2021 financed by the Ministry of Research, Innovation and Digitalization within Program 1 - Development of national research and development system. | ANR-11-LABX-0002,ARBRE,Recherches Avancées sur l'Arbre et les Ecosytèmes Forestiers(2011)
International audience
Mostrar más [+] Menos [-]Inglés. The French National Forest Inventory provides detailed forest information up to large national and regional scales. Forest inventory for small areas of interest within a large population is equally important for decision making, such as for local forest planning and management purposes. However, sampling these small areas with sufficient ground plots is often not cost efficient. In response, small area estimation has gained increasing popularity in forest inventory. It consists of a set of techniques that enables predictions of forest attributes of subpopulation with the help of auxiliary information that compensates for the small field samples.Common sources of auxiliary information usually come from remote sensing technology, such as airborne laser scanning and satellite imagery. The newly launched NASA’s Global Ecosystem Dynamics Investigation (GEDI), a full waveform Lidar instrument, provides an unprecedented opportunity of collecting large-scale and dense forest sample plots given its sampling frequency and spatial coverage. However, the geolocation uncertainty associated with GEDI footprints create important challenges for their use for small area estimations.In this study, we designed a process that provides NFI measurements at plot level with GEDI auxiliary information from nearby footprints. We demonstrated that GEDI RH98 is equivalent to NFI dominant height at plot level. We stressed the importance of pairing NFI plots with nearby GEDI footprints, based on not only the distance in between but also their similarities, i.e., forest heights and forest types. Subsequently, these NFI-GEDI pairs were used for small area estimations following a two-phase sampling scheme. We showcased that, with an adequate sample size, small area estimation with GEDI auxiliary data can improve the accuracy of forest volume estimates.
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